激光束粉末床熔融快速成型技术的多部件构建对温度和残余应力的影响

IF 2.3 4区 工程技术 Q3 ENGINEERING, MANUFACTURING 3D Printing and Additive Manufacturing Pub Date : 2023-08-01 Epub Date: 2023-08-09 DOI:10.1089/3dp.2021.0143
Wenyou Zhang, Mingming Tong, Noel M Harrison
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引用次数: 0

摘要

激光束粉末床熔融(PBF-LB)是金属增材制造(AM)技术中的领先技术,在航空航天和医疗器械领域有着广泛的应用。现有的大多数 PBF-LB 工艺建模主要基于在大型构建板上制造单个零件,无法反映实际的多零件 PBF-LB 制造。批量大小对快速成型零件的热性能和机械性能的影响尚未得到研究。在这项工作中,首次提出了多部件 PBF-LB 热力学建模框架。计算研究了样品数量(1、2 和 4)对零件级部件的温度和残余应力(RS)的影响。结果发现,零件内的 RS 随每次构建的零件数量增加而减少。位于构建板中心区域的部件比位于边界的部件具有更大的 RS。这些研究结果有助于为自动成型设计人员和操作人员提供最佳的打印设置,以最大限度地减少 PBF-LB 中金属零件的 RS。
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Multipart Build Effects on Temperature and Residual Stress by Laser Beam Powder Bed Fusion Additive Manufacturing.

Laser beam powder bed fusion (PBF-LB) is a leading technique among metal additive manufacturing (AM), and it has a wide range of applications in aerospace and medical devices. Most of the existing PBF-LB process modeling is mainly based on the fabrication of a single part on a large build plate, which is not reflective of the practical multipart PBF-LB manufacturing. The effects of batch size on the thermal and mechanical behavior of additively manufactured parts have not been investigated. In this work, the multipart PBF-LB thermomechanical modeling framework was proposed for the first time. The effects of sample numbers (1, 2, and 4) on temperature and residual stress (RS) of part-scale components were computationally investigated. It is found that RS within the parts decreased with increasing number of components per build. Parts located at the central areas of the build plate had larger RS than at the border. These findings can be beneficial for informing AM designers and operators of the optimum printing setup to minimize RS of metal parts in PBF-LB.

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来源期刊
3D Printing and Additive Manufacturing
3D Printing and Additive Manufacturing Materials Science-Materials Science (miscellaneous)
CiteScore
6.00
自引率
6.50%
发文量
126
期刊介绍: 3D Printing and Additive Manufacturing is a peer-reviewed journal that provides a forum for world-class research in additive manufacturing and related technologies. The Journal explores emerging challenges and opportunities ranging from new developments of processes and materials, to new simulation and design tools, and informative applications and case studies. Novel applications in new areas, such as medicine, education, bio-printing, food printing, art and architecture, are also encouraged. The Journal addresses the important questions surrounding this powerful and growing field, including issues in policy and law, intellectual property, data standards, safety and liability, environmental impact, social, economic, and humanitarian implications, and emerging business models at the industrial and consumer scales.
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